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Fault Diagnosis Techniques for Linear Sampled Data Systems and a Class of Nonlinear Systems

机译:线性采样数据系统和一类非线性系统的故障诊断技术

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摘要

This thesis deals with the fault diagnosis design problem both for dynamical continuous time systems whose output signal are affected by fixed point quantization,udreferred as sampled-data systems, and for two different applications whose dynamics are inherent high nonlinear: a remotely operated underwater vehicle and a scramjet-powered hypersonic vehicle.udRobustness is a crucial issue. In sampled-data systems, full decoupling of disturbance terms from faulty signals becomes more difficult after discretization.udIn nonlinear processes, due to hard nonlinearity or the inefficiency of linearization, the “classical” linear fault detection and isolation and fault tolerant control methods may not be applied.udSome observer-based fault detection and fault tolerant control techniques are studied throughout the thesis, and the effectiveness of such methods are validated with simulations. The most challenging trade-off is to increase sensitivity to faults and robustness to other unknown inputs, like disturbances. Broadly speaking, fault detection filters are designed in order to generate analytical diagnosis functions, called residuals, which should be independent with respect to the system operating state and should be decoupled from disturbances. Decisions on the occurrence of a possible fault are therefore taken on the basis such residual signals.
机译:本论文针对输出信号受定点量化影响的动态连续时间系统(称为采样数据系统)以及动力学固有的高非线性的两种不同应用(远程操作水下航行器)的故障诊断设计问题 ud鲁棒性是一个关键问题。在采样数据系统中,离散化后,很难将干扰项与故障信号完全分离。 ud在非线性过程中,由于硬性非线性或线性化效率低下,“经典”线性故障检测和隔离以及容错控制方法可能在整个论文中研究了一些基于观察者的故障检测和容错控制技术,并通过仿真验证了这些方法的有效性。最具挑战性的折衷方案是提高对故障的敏感性和对其他未知输入(如干扰)的鲁棒性。广义地说,故障检测滤波器的设计目的是生成分析诊断功能,称为残差,该功能应相对于系统运行状态独立,并应与干扰分离。因此,基于这种残余信号来做出关于可能的故障发生的判定。

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    Pettinari Silvia;

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  • 年度 2012
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  • 原文格式 PDF
  • 正文语种 {"code":"en","name":"English","id":9}
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